Overview
Are you an experienced knowledge engineer who enjoys solving complex data challenges? We have an exciting opportunity for you to join us as a Knowledge Graph and Ontology Specialist and build the semantic foundations for the future of industrial data.
You will join the AMRC at the University of Sheffield, as part of a growing interoperability team currently funded through the leadership of a UKRI Future Leadership Fellow. We are tackling critical barriers of system interoperability preventing organisations from leveraging the benefits of leading-edge technology, such as digital twins and AI, by unifying the current siloed infrastructures to drive industrial adoption. While the wider project focuses on accelerating industrial interoperability approaches, this role is dedicated entirely to the knowledge graph engineering and ontological understanding underpinning its success.
As a specialist, you will design and develop semantic architectures to make industrial data understandable, interoperable, and queryable. With 2-3 years of experience in knowledge engineering or conceptual modelling, you will establish information pipelines to extract semantic structure from information sources and apply advanced conceptual frameworks (including 3D vs. 4D approaches) to accurately capture complex engineering lifecycles.
Please submit a CV and cover letter. In your cover letter, please include:
An explanation and link or attachment to a representative conceptual model or an aspect ontology snippet you have developed.
A brief explanation of a time you had to advocate for a specific modelling approach (e.g., formal ontology over a simple taxonomy).
A short description of your contributions to a collaborative project.
Main duties and responsibilities
Design, build, and maintain formal, machine-readable ontologies (e.g., using UML, RDF(S), SHACL, OWL) to support knowledge representation across multiple high-impact industrially-focused innovation projects.
Apply advanced modelling paradigms, explicitly determining the appropriate use of 3D (endurantist/spatial) versus 4D (perdurantist/spatiotemporal) data modelling approaches to capture the state and lifecycle of engineering and research entities.
Clearly document and differentiate the use of semantic technologies from primitive data dictionaries and taxonomies through to formal ontologies and logic across the project's infrastructure, ensuring the right tool is used for the right semantic requirement.
Work closely with end users, software engineering and data scientists to ensure that all semantic models are FAIR (Findable, Accessible, Interoperable, and Reusable).
Collaborate with the senior technical fellow, industry partners, and domain experts to extract implicit domain knowledge into explicit, rigorous conceptual models.
Design the high-level semantic strategy and lifecycle management for the project's knowledge graphs and data schemas.
Lead the writing of technical documentation, ontology release notes, and contribute to the dissemination of the project's ontological approach.
Provide dissemination and mentorship to research teams on the importance of robust knowledge graph development and the practical differences between different semantic approaches (taxonomies vs ontologies).
Organise technical alignment meetings and supervise/mentor junior staff.
Make ethical decisions in your role, embedding the University's sustainability strategy into your working activities wherever possible.
Carry out other duties, commensurate with the grade and remit of the post
Person Specification
Our diverse community of staff and students recognises the unique abilities, backgrounds, and beliefs of all. We foster a culture where everyone feels they belong and are respected. Even if your past experience doesn't match perfectly with this role's criteria, your contribution is valuable, and we encourage you to apply. Please ensure that you reference the application criteria in the application statement when you apply.
Criteria
Essential or desirable
Stage(s) assessed at
Bachelor's or master's degree in Information Science, Computer Science, Philosophy (with a focus on formal logic/ontology), Systems Engineering, or a related area, coupled with 2-3 years of practical knowledge graph and ontology experience.
Essential
Interview / Application
Working knowledge of foundational upper ontologies (e.g., BORO, HQDM, IES, ISO 15926, BFO, UFO, SUMO, DOLCE) and a demonstrable understanding of 4D (perdurantist / spatiotemporal) vs. 3D (endurantist / spatial) modelling methods in extending domain ontologies.
Essential
Interview / Application
Deep, practical understanding of the distinctions, limitations, and appropriate applications of formal ontologies versus data dictionaries, vocabularies, and taxonomies.
Essential
Interview / Application
Experience with semantic web technologies (RDF(S), OWL, SPARQL, SHACL), standard conceptual modelling languages (e.g., UML or similar) and linked data formats (e.g. Turtle).
Essential
Interview / Application
Practical experience with ontology authoring tools and workflows (e.g., Sparx Enterprise Architect, Protégé) and familiarity with ontology design patterns and common anti-patterns.
Essential
Interview / Application
Working knowledge and understanding of the differences between graph database technologies (e.g., Neo4j, GraphDB, RDFox) and experience building and managing knowledge graphs that integrate data from multiple sources.
Essential
Interview / Application
Experience translating raw or semi-structured engineering data into structured semantic models, with an understanding of data pipeline or ETL fundamentals.
Essential
Interview / Application
Ability to work in an interdisciplinary environment, interviewing domain experts to translate complex subject matter into formal logic and structured models.
Essential
Interview / Application
Effective communication skills, both written and verbal, including the ability to explain highly abstract conceptual models to non-technical stakeholders.
Essential
Interview / Application
Ability to work effectively as part of an agile team (e.g. scrum, kanban) with a demonstrated capacity to operate independently, alongside excellent time, project management, and collaborative skills.
Essential
Interview / Application
Experience applying version control (e.g., Git), continuous integration, or open-source practices specifically tailored to ontology development, model lifecycle management, or semantic data collaboration.
Desirable
Interview / Application
Background or exposure to advanced manufacturing, engineering, or industrial R&D environments.
Desirable
Interview / Application
Further Information
Grade
7
Salary
£38,784 - £47,289 per annum.
Work arrangement
Full-time
Duration
Fixed term until 31st October 2029
Line manager
Senior Technical Fellow in Interoperability
Direct reports
None - with opportunity for supporting placements and graduate staff.
Right to work in the UK
If you do not currently hold the right to work in the UK, you can find more information here to help determine your visa eligibility. Additional guidance is also available on the UK Visa & Immigration website .
For informal enquiries about this job contact Jonathan Eyre, Senior Technical Fellow in Interoperability on [email protected]
We are committed to exploring flexible working opportunities which benefit the individual and University.
Next steps in the recruitment process
The selection process will consist of an in-person interview at Factory 2050, Sheffield consisting of: a short presentation from applicants, a series of questions from a panel, followed by a tour around the facility. We plan to let candidates know if they have progressed to the selection stage within two weeks of the closing date. Contact Jonathan Eyre if you require any reasonable adjustments.
Our vision and strategic plan
We are the University of Sheffield. This is our vision: sheffield.ac.uk/vision (opens in new window).
We are a Disability Confident Leader (opens in a new window). If you have a disability and meet the essential criteria for this job you will be invited to take part in the next stage of the selection process.
Possession of a criminal record is not an automatic bar to employment at the University of Sheffield. We recognise the value of steady employment in the rehabilitation process and examine each case in its own right. More information can be found on our Information for candidates page.
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